(19)
(11) EP 3 635 309 B1

(12) EUROPEAN PATENT SPECIFICATION

(45) Mention of the grant of the patent:
14.09.2022 Bulletin 2022/37

(21) Application number: 18735068.1

(22) Date of filing: 07.06.2018
(51) International Patent Classification (IPC): 
F25B 27/00(2006.01)
B60H 1/00(2006.01)
F25D 29/00(2006.01)
B60H 1/32(2006.01)
(52) Cooperative Patent Classification (CPC):
B60H 1/00428; B60H 1/3232; F25B 27/00; F25D 29/003; Y02T 10/88; Y02T 10/70
(86) International application number:
PCT/US2018/036491
(87) International publication number:
WO 2018/226981 (13.12.2018 Gazette 2018/50)

(54)

TRANSPORT REFRIGERATION UNIT SYSTEM AND A METHOD OF OPERATING A TRANSPORT REFRIGERATION UNIT SYSTEM

TRANSPORTKÜHLEINHEITSSYSTEM UND VERFAHREN ZUM BETREIBEN EINES TRANSPORTKÜHLEINHEITSSYSTEM

SYSTÈME D'UNITÉ FRIGORIFIQUE DE TRANSPORT ET PROCÉDÉ DE FONCTIONNEMENT D'UN SYSTÈME D'UNITÉ FRIGORIFIQUE DE TRANSPORT


(84) Designated Contracting States:
AL AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HR HU IE IS IT LI LT LU LV MC MK MT NL NO PL PT RO RS SE SI SK SM TR

(30) Priority: 07.06.2017 US 201762516252 P

(43) Date of publication of application:
15.04.2020 Bulletin 2020/16

(73) Proprietor: Carrier Corporation
Palm Beach Gardens, FL 33418 (US)

(72) Inventors:
  • BURCHILL, Jeffrey J.
    East Syracuse New York 13057 (US)
  • SAROKA, Mary D.
    Syracuse New York 13221 (US)
  • CHEN, Yu
    Syracuse New York 13221 (US)

(74) Representative: Dehns 
St. Bride's House 10 Salisbury Square
London EC4Y 8JD
London EC4Y 8JD (GB)


(56) References cited: : 
GB-A- 2 513 944
US-B2- 8 863 540
US-B1- 7 460 930
   
       
    Note: Within nine months from the publication of the mention of the grant of the European patent, any person may give notice to the European Patent Office of opposition to the European patent granted. Notice of opposition shall be filed in a written reasoned statement. It shall not be deemed to have been filed until the opposition fee has been paid. (Art. 99(1) European Patent Convention).


    Description

    BACKGROUND



    [0001] The following description relates to transport refrigeration units and, more particularly, to a system and method for energy control of transport refrigeration units with energy storage devices.

    [0002] Environmental concerns and regulations are causing a shift in the design of transport refrigeration units (TRUs) that will make these devices quieter and cleaner in operation. That is, TRUs will have reduced noise levels associated with their operations and will be quieter as a result. Meanwhile, particulates will be eliminated from diesel engines or TRU refrigeration circuits will be reconfigured to use natural refrigerants as primary working fluids to provide for cleaner results. It has been found that an effective way to achieve both quieter and cleaner TRU operation is through a replacement of a diesel engine, which has traditionally been the TRU power source, with a non-diesel energy storage device such as a battery.

    [0003] US 8 863 540 B2 discloses an HVAC system which comprises a battery management controller and a power management controller.

    [0004] US 7 460 930 B1 discloses a power management device comprising a monitor module and a control module.

    BRIEF DESCRIPTION



    [0005] According to an object of the invention, a transport refrigeration unit (TRU) system is provided. The TRU system includes a TRU and an energy storage device (ESD). The TRU includes components which are configured to control an environment in a compartment interior and a TRU controller configured to control the components in accordance with initial control settings and to monitor energy usage by the components being controlled in accordance with the initial control settings. The ESD includes an ESD controller. The ESD controller is receptive of data reflective of the monitored energy usage by the components from the TRU controller and configured to determine whether the energy usage is above a threshold. In an event the energy usage is above the threshold, the ESD controller is further configured to identify operational changes for one or more of the components to reduce the energy usage and override the initial control settings of the one or more of the components with new control settings.

    [0006] The TRU may be further configured to monitor energy usage by the components being controlled in accordance with the new control settings.

    [0007] The monitored energy usage may include energy usage by the components being controlled in accordance with the initial control settings and in accordance with the new control settings, and the ESD controller is further configured to determine whether the energy usage is below a minimum threshold and issue an alarm in an event the energy usage is below the minimum threshold.

    [0008] According to a preferred embodiment, the TRU includes components which may be configured to control environments in multiple compartment interiors and a TRU controller configured to control the components in accordance with initial control settings and to monitor energy usage by the components being controlled in accordance with the initial control settings. In an event the energy usage is above the threshold, the ESD controller is further configured to identify operational changes for one or more of the components of one or more of the multiple compartment interiors to reduce the energy usage and override the initial control settings of the one or more of the components with new control settings.

    [0009] According to yet another object of the invention, a method of operating a transport refrigeration unit (TRU) system is provided and includes configuring TRU components to control one or more environments in one or more compartment interiors, configuring a TRU controller to control the TRU components in accordance with initial control settings and to monitor energy usage by the TRU components being controlled in accordance with the initial control settings and providing an ESD that includes an ESD controller. The method further includes receiving, at the ESD controller, data reflective of the monitored energy usage by the components from the TRU controller, determining whether the energy usage is above a threshold, identifying, at the ESD controller, operational changes for one or more of the components of the one or more compartment interiors to reduce the energy usage in an event the energy usage is above the threshold and overriding the initial control settings of the one or more of the components with new control settings.

    [0010] The method further may include configuring the TRU controller to monitor energy usage by the TRU components being controlled in accordance with the new control settings.

    [0011] The monitored energy usage may include energy usage by the TRU components being controlled in accordance with the initial control settings and in accordance with the new control settings and the method further includes determining, at the ESD controller, whether the energy usage is below a minimum threshold, and issuing an alarm in an event the energy usage is below the minimum threshold.

    [0012] These and other advantages and features will become more apparent from the following description taken in conjunction with the drawings.

    BRIEF DESCRIPTION OF THE DRAWINGS



    [0013] The subject matter, which is regarded as the disclosure, is particularly pointed out and distinctly claimed in the claims at the conclusion of the specification. The foregoing and other features, and advantages of the disclosure are apparent from the following detailed description taken in conjunction with the accompanying drawings in which:

    FIG. 1 is a side view of a transport refrigeration unit (TRU) for use with a container formed to define a single compartment in accordance with the invention;

    FIG. 2 is a side view of a TRU for use with a container formed to define multiple compartments in accordance with a preferred embodiment of the invention;

    FIG. 3 is a schematic diagram illustrating components of a TRU in accordance with the invention;

    FIG. 4 is a schematic diagram illustrating components of an energy storage device (ESD) in accordance with the invention;

    FIG. 5 is a schematic diagram illustrating communications between a TRU and an ESD in accordance with the invention;

    FIG. 6 is a schematic side view of a housing of an ESD in accordance with a non-claimed example;

    FIG. 7 is a flow diagram illustrating a method of operating a TRU system for use with a container pulled by a cab powered by a diesel engine in accordance with a non-claimed example; ;

    FIG. 8 is a schematic illustration of multiple containers in a warehoused conditior according to a non-claimed example; ;

    FIG. 9 is a flow diagram illustrating a method of operating a TRU system in accordance with a non-claimed example; ;

    FIG. 10 is a flow diagram illustrating a method of operating a TRU system in accordance with a non-claimed example; ;

    FIG. 11 is a graphical display of various temperature set points and ±Δ temperature ranges;

    FIG. 12 is a graphical display of various temperature set points and ±Δ temperature ranges; ;

    FIG. 13 is a flow diagram illustrating a method of operating a TRU system in accordance with an embodiment of the invention; ; and

    FIG. 14 is a flow diagram illustrating a method of operating a TRU system in accordance with a Preferred embodiment of the invention. .


    DETAILED DESCRIPTION



    [0014] As will be described below, a non-diesel energy storage device (ESD) is used to provide power to a transport refrigeration unit (TRU) for a trailer having a single compartment or multiple compartments. The ESD includes a controller which communicates with a controller of the TRU to determine an energy need of the TRU and controls the ESD to provide energy to the TRU in accordance with the energy need.

    [0015] With reference to FIGS. 1-5, a TRU system 10 is provided for use with a container 20 that is pulled by a cab 21 that may be powered by a diesel engine 22 or any other type of fossil fuel burning engine. The TRU system 10 includes a TRU 30, an ESD 40, a communication network 50 and a power network 60. Both the TRU 30 and the ESD 40 are communicatively coupled to the communication network 50. Similarly, both the TRU 30 and the ESD 40 are communicatively coupled to the power network 60.

    [0016] In accordance with embodiments of the invention and, shown in FIG. 1, the container 20 may be formed to define an interior 201 with a single compartment 202. In such a case, an interior temperature and other environmental conditions of the signal compartment are controllable by various operations of the TRU 30. In accordance with a preferred embodiment and, as shown in FIG. 2, the container 20 may be formed to define an interior 203 with a proximal compartment 204 and remote compartments 205. In such cases, the interior temperatures and other environmental conditions of the proximal compartment are controllable by various operations of the TRU 30 while the interior temperatures and other environmental conditions of the proximal compartment are respectively controllable by various operations of remote TRUs 301. The remote TRUs may be operable dependently or independently of the TRU 30. In any case, the container 20 may further include a plurality of various sensors to measure and monitor environmental conditions therein. These sensors can be configured to transmit sensing data to the TRU 30 as part of a feedback control loop.

    [0017] As shown in FIG. 3, the TRU 30 (and the remote TRUs 301, where applicable) includes a TRU controller 31 and various components 32 that are disposed and configured for controlling environmental conditions within the container 20 (e.g., a compressor, an evaporator, a fan, etc.). The TRU controller 31 may include a processor 310 and a memory unit 311 having executable instructions stored thereon, which, when executed, cause the processor 310 to at least be receptive of control data 33 along with sensing data from the sensors of the container 20. The control data 33 is configured to be reflective of temperature profiles of the single compartment 202 or the proximal compartment 204 and the remote compartments 205 in the container 20. When executed, the executable instructions may further cause the processor 310 to operate the various components 32 of the TRU 30 in accordance with the control data 33 so as to maintain respective container interior temperatures that are as close as possible to the temperature profiles of the one or more compartments in the container 20.

    [0018] Each TRU 30 may further include a TRU battery pack 34 and a solar panel 35 (see FIG. 8). The TRU battery pack 34 is available for use by at least the TRU controller 31 for operating the various components 32 as need be on at least a limited basis. The solar panel 35 is disposed and configured to generate electrical power from collecting sunlight and may be disposed on an upper surface of the TRU 30.

    [0019] As shown in FIG. 3, the TRU 30 may also include a plurality of sensors 36, an input/output (I/O) interface 37 and a timer 38. The plurality of sensors 36 may include compressor discharge and suction pressure and temperature sensors 361, evaporator leaving temperature sensors 362 and supply, return and ambient air temperature sensors 363. The I/O interface 37 is disposed such that the TRU controller 31 is receptive of readings from the plurality of sensors 36 via the I/O interface 37. The timer 38 is configured to timestamp the readings of the plurality of sensors 36. In addition, in these or other cases, the memory unit 311 may be configured to additionally store component identification data, which may be provided as model numbers for each of the various components 32, for example, the readings of the plurality of sensors 36, which is recordable as current condition data, and control data. The control data may include a temperature set point instruction as well as a ±Δ temperature range instruction.

    [0020] As shown in FIGS. 1, 2 and 4, the ESD 40 is separate and distinct from the diesel engine 22 and may include a battery or, more particularly, a rechargeable battery 41 and an ESD controller 42. The ESD controller 42 may include a processor 420, a memory unit 421 having executable instructions stored thereon and an I/O interface 422 by which communications to and from the processor 420 proceed. When executed, the executable instructions cause the processor 420 to perform the following operations. For example, when executed, the executable instructions cause the processor 420 to determine an energy need of the TRU 30 to comply with the control data 33 from communications between the ESD controller 42 and the TRU controller 31 via the communication network 50. As another example, when executed, the executable instructions cause the processor 420 to control the ESD 40 to provide energy to the TRU 30 in accordance with the energy need via the power network 60.

    [0021] The executable instructions, when executed, may also cause the processor 420 to identify an additional load 423 which may be coupled to or applied to the ESD 40, to determine that this additional load 423 has an additional energy need and to control the ESD 40 to provide energy to the additional load 421 in accordance with the additional energy need.

    [0022] The ESD 40 will also allow for export of power to external devices other than the TRU 30. For example, external loads such as lights, lift gates, etc. could be powered from or by the ESD 40 under the control of the ESD controller 42 possibly in conjunction with the TRU controller 31. The TRU 30 may take priority for power use to maintain temperature controls unless otherwise specified.

    [0023] As shown in FIGS. 1, 2 and 5, the TRU 30 may be supportively disposable on a side or front wall 205 of the container 20 and the ESD 40 may be supportively disposable on an underside 206 of the container 20. In these or other cases, the communication and power networks 50 and 60 may respectively include wiring 51 and 61 that are respectively routable along an exterior (i.e., along the underside 206 and the front wall 205) of the container 20. The wiring 51 and 61 will be sized, insulated and protected to communicate data with little or no interference or to conduct electrical power in various environmental conditions to which the TRU system 10 is exposed.

    [0024] As shown in FIGS. 3 and 4, at least the communication network 50 may include a wireless communication pathway which is enabled by respective transmit/receive (T/R) modules 52 in the TRU controller 31 and the ESD controller 42. The power network 60 may also include at least a portion which is configured as a wireless network.

    [0025] With reference to FIG. 6, the ESD 40 will be designed mechanically to withstand all vibration and shock seen in transport environments. This will include providing the ESD 40 with proper mounting that will prevent damage or inadvertent disconnection. To this end, the ESD 40 includes the battery or, more particularly, the rechargeable battery 41 and the ESD controller 42 and may also include a housing 43 for housing the rechargeable battery 41 and the ESD controller 42 as well as an external power input 44 by which current can be directed from an external source toward the rechargeable battery 41 for charging and recharging purposes. As shown in FIG. 6, the housing 43 is configured to protect the ESD 40 from environmental conditions, such as road debris, moisture and corrosion, and may include an access panel 430 by which a serviceman can access the ESD 40 for servicing or replacement and vents 431 for defining a coolant pathway along which airflow can be directed to cool the rechargeable battery 41.

    [0026] The external source may be any one or more of an electrical grid (see, e.g., electrical grid 801 of FIG. 8), solar panels operably disposed on either containers 20 or TRUs 30 (see, e.g., the solar panels 35 of FIG. 8), another storage device or a power generation source. In any case, the external source will provide for supplemental power and/or restoration of power of the rechargeable battery 41. In addition, the external power input 44 may be connectable to the external power source by way of a receptacle. This receptacle may be user accessible, requires no tools to connect and may be protected against environmental conditions such as moisture, dust, etc.

    [0027] With reference to FIG. 7, a method of operating the TRU system 10 according to a non-claimed example is provided. As shown in FIG. 7, the method includes receiving, at the TRU controller 31, the control data 33 (block 701) and operating the TRU 30 in accordance with at least the control data 33 (block 702). The method further includes determining, at the ESD controller 42, an energy need of the TRU 30 to comply with the control data 33 from communications between the TRU and ESD controllers 31 and 42 via the communications network 50 (block 703). In addition, the method includes executing control of the ESD 40 by the ESD controller 42 to provide energy to the TRU 30 in accordance with the energy need via a power network 60.

    [0028] The determining of block 703 may include recognizing, at the ESD controller 42, a type of the TRU 30 from identification information transmitted from the TRU 30 or the TRU controller 31 to the ESD controller 42 (block 7031) and calculating, at the ESD controller 42, the energy need of the TRU 30 in accordance with the recognized type of the TRU 30 (block 7032).

    [0029] The description provided above relates to systems and methods of operating a TRU using a non-diesel ESD to thus provide for quieter and cleaner overall TRU operation as compared to what is otherwise possible with a traditional diesel engine power source. The description is applicable to any TRU (trailer or truck units) using any refrigeration working fluid (e.g., R-404a, R-452a, R-744, carbon dioxide, etc.).

    [0030] As will be described below, a control scheme and power architecture is provided to allow a TRU 30 to comply or communicate with grid demand depending on a current load profile and TRU use.

    [0031] With reference back to FIG. 3 and with additional reference to FIG. 8, a transport refrigeration unit (TRU) system 800 is provided. As separately shown in FIGS. 3 and 8, the TRU system 800 includes containers 20, TRUs 30, an electrical grid 801 and a control unit 802. Each respective TRU 30 is operably coupled to a corresponding one of the containers 20 and is configured substantially as described above. That is, each TRU 30 includes the TRU controller 31, the various components 32 that are configured to control an environment within an interior of the corresponding container 20, the TRU battery pack 34 that is configured to store energy for powering at least the various components 32 and the solar panel 35. The electrical grid 801 may have multiple generators and loads electrically coupled thereto such that those multiple generators and loads are in turn coupled to the TRUs 30.

    [0032] The control unit 802 is communicative with the TRU controllers 31 of each of the TRUs 30 and with the electrical grid 801 and is configured to manage power supplies and demands between the TRU battery pack 34 of each of the TRUs 30 and the electrical grid 801. The control unit 802 may be remote from and communicatively coupled with the TRU controllers 31 or may be distributed throughout the TRU system 800 so as to be embodied in some or all of the TRU controllers 31.

    [0033] In any case, a capacity of one or more of the TRU battery packs 34 is made available to the electrical grid 801 by the control unit 802. To this end, an availability of the capacity of the one or more TRU battery packs 34 is controlled by the control unit 802 in accordance with one or more of a loading schedule of each of the containers 20, a current loading or cooling condition of each of the containers 20 and current or predicted ambient conditions in and around each of the containers 20. That is, where the control unit 802 is embodied in some or all of the TRU controllers 31, the executable instructions of the memory unit 311 cause the processor 310 to determine at least one or more of a loading schedule of each of the containers 20, a current loading or cooling condition of each of the containers 20 and current or predicted ambient conditions in and around each of the containers 20 and to make a decision relating to an amount of power that can be provided to the electrical grid 801 from the TRU battery packs 34 without sacrificing performance accordingly.

    [0034] For example, a TRU battery pack 34 of a TRU 30 of an empty container 20, which is stowed at a warehouse and which is not scheduled to be loaded for multiple days, can be employed to serve as a load leveling or energy arbitrage device for the electrical grid 801. As another example, where certain TRUs 30 are fitted with solar panels 35, the control unit 802 can prioritize the use of electrical power generated by those solar panels for battery charging purposes or grid sale based on at least one or more of a loading schedule of each of the containers 20, a current loading or cooling condition of each of the containers 20 and current or predicted ambient conditions in and around each of the containers 20.

    [0035] With reference to FIG. 9, a non-claimed example method of operating a transport refrigeration unit (TRU) system is provided. As shown in FIG. 9, the method includes stowing one or more containers 20 (block 901), operably coupling a TRU 30 to each of the one or more containers 20 with each TRU 30 including thee various components 32 configured to control an environment within an interior of the corresponding container 20 and a TRU battery pack 34 (block 902), providing a control unit 802 in communication with the TRU 30 and an electrical grid 801 (block 903) and managing power supplies and demands between the TRU battery pack 34 of each TRU 30 and the electrical grid 801 (block 904). Here, the managing of block 904 may include making a capacity of one or more TRU battery packs 34 available to the electrical grid 801 by the control unit 802 in accordance with one or more of a loading schedule (block 9041), a current loading or cooling condition (block 9042) and current or predicted ambient conditions (block 9043).

    [0036] The description provided herein of smart grid integration allows for economic rebates and utility rebates. Smart communication and predictive load requirements can inform warehouse customers with regards to their expected peak energy requirements. Solar Panel fitted TRU's can sell energy during peak production hours over prioritizing battery and unit charging.

    [0037] As will be described below, systems and methods of TRU control are provided for a non-diesel ESD, such as a battery pack, as determined by a controlling temperature profile of container cooling compartments. Here, component refrigeration controls are shifted from the traditional TRU controller to the ESD controller by setting refrigeration component operating settings in the ESD controller with consideration given to both the power needed to operate the various components of the TRU and the proper settings to meet TRU refrigeration needs as set by the controlling temperature profile(s). Once the settings are known, the information is passed back to the TRU controller and the TRU operates accordingly.

    [0038] Thus, with reference to FIGS. 10-12, a method of operating a transport refrigeration unit (TRU) system is provided and includes starting a TRU 30 such that the various components 32 control an environment of an interior of a container 20 with the TRU controller 31 controlling the various components 32 in accordance with component operating settings (block 1001). Subsequently, the TRU controller 31 collects current condition data that is reflective of current conditions of the interior of the container 20 from the plurality of sensors 36 (block 1002) and, with the TRU and the ESD controllers 31 and 42 being established, the TRU controller 31 transmits identification data identifying the various components 32, the current condition data and control data that is reflective of a temperature profile of the interior of the container 20 to the ESD controller 42 (block 1003). The ESD controller 42 then looks up component control settings of each of the various components 32 in accordance with the identification data (block 1004). At this point, the ESD controller 42 determines the component operating settings in accordance with the component control settings associated with the identification data as well as the current condition and control data and issues the component operating settings to the TRU controller 31 (block 1005).

    [0039] The identification data may include model numbers of the various components 32, the current condition data may include compressor discharge and suction pressure and temperatures, evaporator temperatures and supply, return and ambient air temperatures and the control data may include a temperature set point instruction with a ±Δ temperature band instruction.

    [0040] Once the ESD controller 42 issues the component operating settings to the TRU controller 31, the ESD controller 42 calculates an energy need of the TRU 30 to operate according to the component operating settings and controls the ESD 40 to provide energy to the TRU 30 in accordance with the energy need while monitoring this energy usage by the TRU 30 by, for example, recording voltage and current supplied by the ESD 40 to the TRU 30 (block 1006). The ESD controller 42 then computes TRU energy usage over time (block 1007) and calculates ESD life in accordance with the monitored energy usage (block 1008).

    [0041] The ESD controller 42 then takes an action based on the calculated ESD life. Such action may include making a decision not to override the control data in an event the ESD life is above a first threshold (block 1009), making a decision to override the control data in an event the ESD life is between a second and the first threshold (block 1010) and/or making a decision to issue an alarm in an event the ESD life is below the second threshold (block 1011). Here, in an event the ESD life is between a second and the first threshold and in an event the control data is consistent with a first control setting, the making of the decision to override the control data comprises changing a temperature set point value (see, e.g., the changing of SP1 to SP2 in FIG. 12). By contrast, in an event the ESD life is between a second and the first threshold and in an event the control data is consistent with a second control setting, the making of the decision to override the control data comprises changing a set point and range values (see, e.g., the changing of the ±Δ temperature range value in FIG. 11 with or without an additional temperature set point change).

    [0042] The description provided above relates to TRU operation of a non-diesel energy source that results in both quieter and cleaner overall TRU operations as compared to a traditional diesel power source and can be used with any TRU using any refrigeration working fluid.

    [0043] As will be described below, methods of TRU energy control are provided for a non-diesel ESD and are determined by controlling temperature profiles of container cooling compartments.

    [0044] With reference to FIGS. 13 and 14, according to the invention the method includes controlling the various components 32 to control an environment in a single compartment interior as shown in FIG. 13 or to control environments in multiple compartment interiors as shown in FIG. 14 (blocks 1301 and 1401) and monitoring energy usage by the components being controlled in accordance with the initial control settings for transmission to the ESD controller 42 (blocks 1302 and 1402). The method includes determining whether the energy usage is above a threshold (blocks 1303 and 1403) and reverting to blocks 1302 and 1402 if not. On the other hand, in an event the energy usage is above the threshold, the methods further include identify operational changes for one or more of the components or for one or more of the components of each of the multiple compartment interiors to reduce the energy usage (blocks 1304 and 1404), overriding the initial control settings of the one or more of the components with new control settings (blocks 1305 and 1405) and operating the components in accordance with the new control settings (blocks 1306 and 1406).

    [0045] As shown in FIGS. 13 and 14, the methods further include monitoring energy usage by the components being controlled in accordance with the new control settings for transmission to the ESD controller 42 (blocks 1307 and 1407), determining whether the energy usage is below a minimum threshold (blocks 1308 and 1408) and issuing an alarm in an event the energy usage is below the minimum threshold (blocks 1309 and 1409).

    [0046] The description provided above relates to TRU operation of a non-diesel energy source that results in both quieter and cleaner overall TRU operations as compared to a traditional diesel power source and can be used with any TRU using any refrigeration working fluid

    [0047] While the disclosure is provided in detail in connection with only a limited number of embodiments, it should be readily understood that the invention is not limited to such disclosed embodiments. The invention is not to be seen as limited by the foregoing description, but is only limited by the scope of the appended claims.


    Claims

    1. A transport refrigeration unit (TRU) system (10), comprising:

    a TRU (30) comprising components (32) which are configured to control one or more environments in one or more compartment interiors and a TRU controller (31) configured to control the components in accordance with initial control settings; and

    a non-diesel energy storage device (ESD) (40) comprising an ESD controller (42),

    characterized by:

    the TRU controller (31) being configured to monitor energy usage by the components being controlled in accordance with the initial control settings,

    the ESD controller (42) being receptive of data reflective of the monitored energy usage by the components (32) from the TRU controller (31) and configured to determine whether the energy usage is above a threshold,

    in an event the energy usage is above the threshold, the ESD controller (42) being further configured to:

    identify operational changes for one or more of the components (32) to reduce the energy usage, and

    override the initial control settings of the one or more of the components (32) with new control settings.


     
    2. The TRU system (10) according to claim 1, wherein the TRU (30) is further configured to monitor energy usage by the components (32) being controlled in accordance with the new control settings.
     
    3. The TRU system (10) according to claim 2, wherein:

    the monitored energy usage comprises energy usage by the components (32) being controlled in accordance with the initial control settings and in accordance with the new control settings, and

    the ESD controller (42) is further configured to:

    determine whether the energy usage is below a minimum threshold, and

    issue an alarm in an event the energy usage is below the minimum threshold.


     
    4. The transport refrigeration unit (TRU) system (10) of any preceding claim, wherein the components (32) are configured to control environments in multiple compartment interiors; and
    wherein in an event the energy usage is above the threshold, the ESD controller (42) is configured to:
    identify operational changes for one or more of the components (32) of one or more of the multiple compartment interiors to reduce the energy usage.
     
    5. A method of operating a transport refrigeration unit (TRU) system (10) comprising:

    configuring TRU components (32) to control one or more environments in one or more compartment interiors;

    configuring a TRU controller (31) to control the TRU components (32) in accordance with initial control settings and to monitor energy usage by the TRU components being controlled in accordance with the initial control settings; and

    providing a non-diesel energy storage device (ESD) (40) comprising an ESD controller (42), the method further comprising:

    receiving, at the ESD controller (42), data reflective of the monitored energy usage by the components (32) from the TRU controller (31);

    determining whether the energy usage is above a threshold;

    identifying, at the ESD controller (42), operational changes for one or more of the components (32) of the one or more compartment interiors to reduce the energy usage in an event the energy usage is above the threshold; and

    overriding the initial control settings of the one or more of the components (32) with new control settings.


     
    6. The method according to claim 5, further comprising monitoring the TRU controller (31) to monitor energy usage by the TRU components (32) being controlled in accordance with the new control settings.
     
    7. The method according to claim 6, wherein:

    the monitored energy usage comprises energy usage by the TRU components (32) being controlled in accordance with the initial control settings and in accordance with the new control settings, and

    the method further comprises:

    determining, at the ESD controller (42), whether the energy usage is below a minimum threshold, and

    issuing an alarm in an event the energy usage is below the minimum threshold.


     


    Ansprüche

    1. Transportkühleinheits- (TRU) System (10), umfassend:

    eine TRU (30), umfassend Komponenten (32), die konfiguriert sind, um eine oder mehrere Umgebungen in einem oder mehreren Abteilungsinnenräumen zu steuern, und eine TRU-Steuereinheit (31), die konfiguriert ist, um die Komponenten gemäß Anfangssteuereinstellungen zu steuern; und

    eine Nichtdiesel-Energiespeichervorrichtung (ESD) (40), die eine ESD-Steuereinheit (42) umfasst,

    dadurch gekennzeichnet, dass:

    die TRU-Steuereinheit (31) konfiguriert ist, um Energieverbrauch durch die Komponenten, die gemäß den Anfangssteuereinstellungen gesteuert werden, zu überwachen,

    die ESD-Steuereinheit (42) für Daten, die den überwachten Energieverbrauch durch die Komponenten (32) widerspiegeln, von derTRU-Steuereinheit (31) empfänglich ist und konfiguriert ist, um zu bestimmen, ob der Energieverbrauch oberhalb einer Schwelle liegt,

    wobei, falls der Energieverbrauch oberhalb der Schwelle liegt, die ESD-Steuereinheit (42) weiter konfiguriert ist zum:

    Identifizieren von betrieblichen Änderungen für eine oder mehrere der Komponenten (32), um den Energieverbrauch zu verringern, und

    Überschreiben der Anfangssteuereinstellungen der einen oder mehreren der Komponenten (32) mit neuen Steuereinstellungen.


     
    2. TRU-System (10) nach Anspruch 1, wobei die TRU (30) weiter konfiguriert ist, um Energieverbrauch durch die Komponenten (32) zu überwachen, die gemäß den neuen Steuereinstellungen gesteuert werden.
     
    3. TRU-System (10) nach Anspruch 2, wobei:

    der überwachte Energieverbrauch den Energieverbrauch durch die Komponenten (32) umfasst, die gemäß den Anfangssteuereinstellungen und gemäß den neuen Steuereinstellungen gesteuert werden, und

    die ESD-Steuereinheit (42) weiter konfiguriert ist zum:

    Bestimmen, ob der Energieverbrauch unterhalb einer Mindestschwelle liegt, und

    Ausgeben einer Warnmeldung, falls der Energieverbrauch unterhalb der Mindestschwelle liegt.


     
    4. Transportkühleinheits- (TRU) System (10) nach einem vorstehenden Anspruch, wobei die Komponenten (32) konfiguriert sind, um Umgebungen in multiplen Abteilungsinnenräumen zu steuern; und
    wobei, falls der Energieverbrauch oberhalb der Schwelle liegt, die ESD-Steuereinheit (42) weiter konfiguriert ist zum:
    Identifizieren von betrieblichen Änderungen für eine oder mehrere der Komponenten (32) eines oder mehrerer der multiplen Abteilungsinnenräume, um den Energieverbrauch zu verringern.
     
    5. Verfahren zum Betreiben eines Transportkühleinheits- (TRU) Systems (10), umfassend:

    Konfigurieren von TRU-Komponenten (32) zum Steuern einer oder mehrerer Umgebungen in einem oder mehreren Abteilungsinnenräumen;

    Konfigurieren einer TRU-Steuereinheit (31) zum Steuern der TRU-Komponenten (32) gemäß Anfangssteuereinstellungen und zum Überwachen von Energieverbrauch durch die TRU-Komponenten, die gemäß den Anfangssteuereinstellungen gesteuert werden; und

    Bereitstellen einer Nichtdiesel-Energiespeichervorrichtung (ESD) (40), umfassend eine ESD-Steuereinheit (42), wobei das Verfahren weiter umfasst:

    Empfangen, an der ESD-Steuereinheit (42), von Daten, die den überwachten Energieverbrauch durch die Komponenten (32) widerspiegeln, von der TRU-Steuereinheit (31);

    Bestimmen, ob der Energieverbrauch oberhalb einer Schwelle liegt;

    Identifizieren, an der ESD-Steuereinheit (42), von betrieblichen Änderungen für eine oder mehrere der Komponenten (32) des einen oder der mehreren Abteilungsinnenräume, um den Energieverbrauch zu verringern, falls der Energieverbrauch oberhalb der Schwelle liegt; und

    Überschreiben der Anfangssteuereinstellungen der einen oder mehreren der Komponenten (32) mit neuen Steuereinstellungen.


     
    6. Verfahren nach Anspruch 5, weiter umfassend Überwachen der TRU-Steuereinheit (31) zum Überwachen von Energieverbrauch durch die TRU-Komponenten (32), die gemäß den neuen Steuereinstellungen gesteuert werden.
     
    7. Verfahren nach Anspruch 6, wobei:

    der überwachte Energieverbrauch den Energieverbrauch durch die TRU-Komponenten (32) umfasst, die gemäß den Anfangssteuereinstellungen und gemäß den neuen Steuereinstellungen gesteuert werden, und

    das Verfahren weiter umfasst:

    Bestimmen, an der ESD-Steuereinheit (42), ob der Energieverbrauch unterhalb einer Mindestschwelle liegt, und

    Ausgeben einer Warnmeldung, falls der Energieverbrauch unterhalb der Mindestschwelle liegt.


     


    Revendications

    1. Système d'unité frigorifique de transport (TRU) (10), comprenant :

    un TRU (30) comprenant des composants (32) qui sont configurés pour commander un ou plusieurs environnements d'un ou plusieurs intérieurs de compartiment et un dispositif de commande (31) de TRU configuré pour commander les composants conformément à des paramètres de commande initiaux ; et

    un dispositif d'accumulation d'énergie non diesel (ESD) (40) comprenant un dispositif de commande d'ESD (42),

    caractérisé par :

    le dispositif de commande (31) de TRU étant configuré pour surveiller une utilisation d'énergie par les composants qui sont commandés conformément aux paramètres de commande initiaux,

    le dispositif de commande d'ESD (42) étant réceptif à des données reflétant l'utilisation d'énergie surveillée par les composants (32) en provenance du dispositif de commande (31) de TRU et configuré pour déterminer si l'utilisation d'énergie est supérieure à un seuil,

    dans un cas où l'utilisation d'énergie est supérieure au seuil, le dispositif de commande d'ESD (42) étant en outre configuré pour :

    identifier des changements fonctionnels d'un ou plusieurs des composants (32) pour réduire l'utilisation d'énergie, et

    remplacer les paramètres de commande initiaux des un ou plusieurs des composants (32) par de nouveaux paramètres de commande.


     
    2. Système de TRU (10) selon la revendication 1, dans lequel le TRU (30) est en outre configuré pour surveiller l'utilisation d'énergie par les composants (32) qui sont commandés conformément aux nouveaux paramètres de commande.
     
    3. Système de TRU (10) selon la revendication 2, dans lequel :

    l'utilisation d'énergie surveillée comprend l'utilisation d'énergie par les composants (32) qui sont commandés conformément aux paramètres de commande initiaux et conformément aux nouveaux paramètres de commande, et

    le dispositif de commande d'ESD (42) est en outre configuré pour :

    déterminer si l'utilisation d'énergie est inférieure à un seuil minimal, et

    émettre une alarme dans un cas où l'utilisation d'énergie est inférieure au seuil minimal.


     
    4. Système d'unité frigorifique de transport (TRU) (10) selon une quelconque revendication, dans lequel les composants (32) sont configurés pour commander des environnements dans de multiples intérieurs de compartiment ; et
    dans lequel dans un cas où l'utilisation d'énergie est supérieure au seuil, le dispositif de commande d'ESD (42) est configuré pour :
    identifier des changements fonctionnels d'un ou plusieurs des composants (32) d'un ou plusieurs des multiples intérieurs de compartiment pour réduire l'utilisation d'énergie.
     
    5. Procédé de fonctionnement d'un système d'unité frigorifique de transport (TRU) (10) comprenant :

    la configuration de composants de TRU (32) pour commander un ou plusieurs environnements dans un ou plusieurs intérieurs de compartiment ;

    la configuration d'un dispositif de commande (31) de TRU pour commander les composants de TRU (32) conformément à des paramètres de commande initiaux et pour surveiller l'utilisation d'énergie par les composants de TRU qui sont commandés conformément aux paramètres de commande initiaux ; et

    la fourniture d'un dispositif d'accumulation d'énergie non diesel (ESD) (40) comprenant un dispositif de commande d'ESD (42), le procédé comprenant en outre :

    la réception, au niveau du dispositif de commande d'ESD (42), de données reflétant l'utilisation d'énergie surveillée par les composants (32) en provenance du dispositif de commande (31) de TRU ;

    la détermination si l'utilisation d'énergie est supérieure à un seuil ;

    l'identification, au niveau du dispositif de commande d'ESD (42), de changements fonctionnels d'un ou plusieurs des composants (32) des un ou plusieurs intérieurs de compartiment pour réduire l'utilisation d'énergie dans un cas où l'utilisation d'énergie est supérieure au seuil ; et

    le remplacement des paramètres de commande initiaux des un ou plusieurs des composants (32) par de nouveaux paramètres de commande.


     
    6. Procédé selon la revendication 5, comprenant en outre la surveillance du dispositif de commande (31) de TRU pour surveiller l'utilisation d'énergie par les composants de TRU (32) qui sont commandés conformément aux nouveaux paramètres de commande.
     
    7. Procédé selon la revendication 6, dans lequel :

    l'utilisation d'énergie surveillée comprend l'utilisation d'énergie par les composants (32) qui sont commandés conformément aux paramètres de commande initiaux et conformément aux nouveaux paramètres de commande, et

    le procédé comprenant en outre :

    la détermination, au niveau du dispositif de commande d'ESD (42), si l'utilisation d'énergie est inférieure à un seuil minimal, et

    l'émission d'une alarme dans un cas où l'utilisation d'énergie est inférieure au seuil minimal.


     




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    Cited references

    REFERENCES CITED IN THE DESCRIPTION



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    Patent documents cited in the description